Aug 2026· Molecular and Cellular Biology· pp.
1-19
· 0 citations· 107 references
Medicine
TL;DR
This review summarizes recent advances in understanding the molecular factors that regulate SG assembly and disassembly, as well as the pathological processes that drive the conversion of SGs into aggregates associated with neurodegenerative diseases and discusses the therapeutic potential of targeting these pathways to mitigate neurodegenerative disease progression.
Abstract
Various cellular stressors inhibit translation initiation and promote ribosome disassembly, thereby transiently inducing stress granules (SGs), dynamic ribonucleoprotein condensates that contain mRNAs and RNA-binding proteins. Although SG assembly is usually reversible, dysregulated SG dynamics can trigger the formation of persistent ubiquitin-positive protein inclusions. There is increasing evidence that this conversion of SGs into insoluble aggregates represents a central pathogenic mechanism in neurodegenerative proteinopathies, such as amyotrophic lateral sclerosis (ALS) and Alzheimer's disease (AD). TAR DNA-binding protein 43 (TDP-43) and Tau are causative factors in ALS and AD, respectively, and both localize to SGs under stress conditions. During disease progression, TDP-43 or Tau within SGs undergoes pathological changes that promote the formation of neurotoxic inclusions, which propagate neuronal dysfunction and death. This review summarizes recent advances in understanding the molecular factors that regulate SG assembly and disassembly, as well as the pathological processes that drive the conversion of SGs into aggregates associated with neurodegenerative diseases. Particular emphasis is placed on the role of the ubiquitin-specific protease 10 (USP10), which modulates SG dynamics and has been mechanistically implicated in both ALS and AD. Finally, we discuss the therapeutic potential of targeting these pathways to mitigate neurodegenerative disease progression.
Reducing biomolecular condensates in stress and disease could provide a general effective therapeutic approach for multiple neurodegenerative diseases, according to specific pathways being pursued for reducing levels of stress granules, aggregated RNA binding proteins and oligomeric Tau.
Benjamin Wolozin, Merci N. Best, Madhav Ellini et al.· Cells· 0 citations
Emerging evidence suggests that dysregulated cellular stress responses, particularly the formation and persistence of stress granules (SGs), may significantly contribute to Alzheimer's disease (AD) pathogenesis. SGs are dynamic, membrane-less ribonucleoprotein assemblies that sequester stalled translation preinitiation...
Emona Jagaselvan, Prasenjit Mondal, Can Zhang· ACS Chemical Neuroscience· 0 citations
Key findings linking tau, RNA, and stress granules are cataloged because they could offer novel opportunities to design therapeutic strategies and highlight the importance of RNA stability in tauopathies.
Tristyn N. Garza, J. Abisambra· Cells· 0 citations
It is demonstrated that G3BP1 also stabilises the COPI vesicle protein beta-COP by promoting its interaction with the deubiquitinase USP10, which accelerates its proteasomal degradation.
Sarayu Ramakrishna, Laura Ryan, Sung-Min Son et al.· Cell Death and Differentiati...· 0 citations
Protein aggregation and proteostasis decline are central features of aging and neurodegenerative disease, arising from progressive impairment of protein quality-control systems and transitions into aggregation-prone states. During aging, diverse proteins, including metabolic and proteostasis-related factors, gradually...
Z. Khan· Frontiers in Aging Neuroscie...· 0 citations
Huntington's disease (HD) offers a particularly instructive, if sobering, window into what happens when a cell's protein-clearance machinery is asked to do more than it can bear. Background: the ubiquitin-proteasome system (UPS) is the principal route by which short-lived and misfolded proteins are removed from eukaryo...